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Updated: Aug 14, 2026

Visualizing Methane-Cycling Microbial Dynamics in Coastal Wetlands
Published on: January 31, 2025
Membrane properties modulate methane oxidation by particulate methane monooxygenase
Callie G Miller1, Frank J Tucci1, Genevieve R Nemeth1
1Departments of Molecular Biosciences and of Chemistry, Northwestern University, Evanston, IL, 60208, USA.
Membrane structure and specific lipids significantly impact methane monooxygenase (pMMO) and ammonia monooxygenase (AMO) activity. Phosphoethanolamine (PE) and cardiolipin enhance pMMO function, with smaller, curved membranes boosting performance.
Area of Science:
- Biochemistry and Structural Biology
- Microbiology
- Membrane Biophysics
Background:
- Copper-dependent membrane monooxygenases, particulate methane monooxygenase (pMMO) and ammonia monooxygenase (AMO), are crucial for methane and ammonia oxidation, respectively.
- These enzymes are vital biotechnological targets and form hexagonal arrays within intracytoplasmic membranes (ICMs).
- The influence of specific lipids and membrane morphology on pMMO and AMO activity remains poorly understood.
Purpose of the Study:
- To investigate how membrane ultrastructure, lipid composition, and curvature affect pMMO and AMO activity.
- To determine the structural basis of pMMO-pMMO interactions within ICM arrays.
- To establish a platform for studying these enzymes in controlled lipid environments.
Main Methods:
- Cryoelectron tomography (cryoET) to analyze ICM ultrastructure in different bacterial species.
- Reconstitution of purified pMMO into liposomes of varying sizes and lipid compositions.
- High-resolution cryo-electron microscopy (cryoEM) to determine the structure of pMMO arrays.
- Methane solubility measurements to assess lipid-specific effects.
Main Results:
- Distinct ICM ultrastructures were observed across three species of methane- and ammonia-oxidizing bacteria.
- pMMO activity in reconstituted proteoliposomes was inversely correlated with liposome diameter, suggesting enhanced function in curved membranes.
- Phosphoethanolamine (PE), particularly unsaturated forms, and cardiolipin significantly increased pMMO activity.
- A 6 Å cryoEM structure revealed the arrangement of neighboring pMMO trimers and mediating lipids/residues.
Conclusions:
- Membrane curvature and specific lipids, notably PE and cardiolipin, play critical roles in modulating pMMO activity.
- The findings provide insights into the functional impact of the native membrane environment on monooxygenase activity.
- This work establishes a versatile platform for future studies on pMMOs and AMOs in tunable lipid environments.
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